Abstract
Miniature, remotely powered and programmable neural stimulators were implanted on the sciatic nerve in nine pig hind\rlimbs. An external dipole antenna was used to transmit power and waveforms to the implant at 915 MHz. For each placement\rlocation, external power was swept until motor threshold was achieved. Thresholds were determined via visual observation\rof muscle twitches in the lower leg. The external antenna was placed at several different distances from the implant\rand the threshold power was recorded as a function of the tissue thickness overlying the implant. Verification of the current\rwas measured by: 1) optical recording electrodes and 2) Random validation using wired recording electrodes. Both methods\rrecorded the current required to reach motor threshold. Results from these tests confirmed that wireless neural stimulation\rcould effectively excite motor nerves remotely in up to 12 cm of soft tissue of a mixed medium. Propagation losses\rfor this verification also agreed with simulation models. These measurements verified that ample current densities could\rbe achieved at significant tissue depths and therefore, a wireless neural stimulator can be potentially be utilized in existing\rneural stimulation therapeutic treatments.
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CITATION STYLE
L, T. P., P, L., & J, G. (2016). Tissue Depth Study for a Fully Implantable, Remotely Powered and Programmable Wireless Neural Stimulator. International Journal of Nano Studies & Technology, 1–6. https://doi.org/10.19070/2167-8685-si02001
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